The NVIDIA RTX 5080 Ti is a consumer-grade GPU built on the Blackwell architecture, featuring 16 GB of memory.
Hardware specifications
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LLMs that fit on the NVIDIA RTX 5080 Ti
Estimated VRAM for popular open-weight LLMs at 16-bit (FP16/BF16), 8-bit (FP8/INT8) and 4-bit (INT4/MXFP4) precision, against 16 GB per GPU.
| Model | Parameters | 16-bit | 8-bit | 4-bit |
|---|---|---|---|---|
| Mistral Small 3.2 24B Mistral AI | 24B | 58 GB Too large | 32 GB Too large | 18 GB Tight on 1× · 4% spare |
| gpt-oss-20b OpenAI | 21B 3.6B active | — Not released | — Not released | 17 GB Tight on 1× · 16% spare |
| Gemma 3 12B Google | 12.2B | 29 GB Too large | 16 GB Tight on 1× · 19% spare | 9.4 GB 1× · 6.6 GB free |
| Granite 4.1 8B IBM | 8.8B | 21 GB Too large | 12 GB 1× · 4.4 GB free | 6.8 GB 1× · 9.2 GB free |
| Qwen3 8B Alibaba | 8.2B | 20 GB Too large | 11 GB 1× · 5.2 GB free | 6.3 GB 1× · 9.7 GB free |
| Llama 3.1 8B Instruct Meta | 8B | 19 GB Too large | 11 GB 1× · 5.4 GB free | 6.2 GB 1× · 9.8 GB free |
| Mistral 7B Instruct v0.3 Mistral AI | 7.2B | 17 GB Tight on 1× · 10% spare | 9.6 GB 1× · 6.4 GB free | 5.6 GB 1× · 10 GB free |
| Qwen3 4B Alibaba | 4B | 9.7 GB 1× · 6.3 GB free | 5.3 GB 1× · 11 GB free | 3.1 GB 1× · 13 GB free |
Estimates: model weights plus 20% for KV cache and runtime overhead, at short context lengths. Long contexts and large batches need more. Rows marked “tight” hold the weights but not that full margin. A ×N figure is the total VRAM across N of these GPUs and makes no claim about interconnect throughput. How we estimate this
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